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bigdataanalysis_tweetsentiment's Introduction

#Project of Sentiment Analysis for the course of Big Data Analysis of the Department of Computer Engineering of Modena and Reggio Emilia.#

##Library used in the project##

To install additional modules and datasource (Wordnet and other modules are required) launch the following command on a python shell:

import nltk
nltk.download()

Download the followings modules:

  • Stopword
  • Wordnet
  • Wordnet_ic
  • All the modules in models

##Project usage##

###Tweet###

The script named ExtractTweet.py can be used to download tweets in a csv file. This script is configurable by this file: config.json

The configurable fields are:

  • consumer_key
  • consumer_secret
  • access_token
  • access_token_secret

These fields can be retrieved from https://dev.twitter.com after creating an account and an application

  • file_name (name of the cvs output file)
  • count (number of tweet to download)
  • filter (a word used to filter the tweet in output)

The CSV file produced in output can be used as arg of the other three script:

  • DeriveTweetSentimentEasy.py: This script uses AFINN-111.txt as vocabulary to try to assign a sentiment score to a tweet.
  • NewTermSentimentInference.py: This script try to assign a sentiment score to the words that are not present in AFINN-111.txt based on the sentiment score of a group of tweets.
  • SentiWordnet.py: This script uses SentiWordNet as vocabulary to try to assign a sentiment score to a tweet. The metrics of the scoring and the annotation process are more complex in this script.

###Document Sentiment Classification###

The script is called DocumentSentimentClassification.py and implements a simple method for document sentiment classification. it possible to set some configuration parameters in the top of Python script:

ipython

For an interactive example with ipython, go into the folder BDA_Senti_ipython and launch the command:

$ ipython notebook --pylab inline

###Slides###

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